Cargando…

Further evidence for low-energy protonium production in vacuum

We describe an experiment performed in the ATHENA apparatus in which there is evidence that the antiproton-proton bound state, protonium, has been produced at very low energies in vacuum following the interaction of cold antiprotons with a trapped cloud of molecular hydrogen ions. The latter were co...

Descripción completa

Detalles Bibliográficos
Autores principales: Lodi Rizzini, E, Venturelli, L, Zurlo, N, Charlton, M, Amsler, C, Bonomi, G, Canali, C, Carraro, C, Fontana, A, Genova, P, Hayano, R, Jorgensen, L V, Kellerbauer, A, Lagomarsino, V, Landua, R, Macri, M, Manuzio, G, Montagna, P, Regenfus, C, Rotondi, A, Testera, G, Variola, A, van der Werf, D P
Publicado: 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1140/epjp/i2012-12124-9
http://cds.cern.ch/record/1559760
_version_ 1780930644954578944
author Lodi Rizzini, E
Venturelli, L
Zurlo, N
Charlton, M
Amsler, C
Bonomi, G
Canali, C
Carraro, C
Fontana, A
Genova, P
Hayano, R
Jorgensen, L V
Kellerbauer, A
Lagomarsino, V
Landua, R
Macri, M
Manuzio, G
Montagna, P
Regenfus, C
Rotondi, A
Testera, G
Variola, A
van der Werf, D P
author_facet Lodi Rizzini, E
Venturelli, L
Zurlo, N
Charlton, M
Amsler, C
Bonomi, G
Canali, C
Carraro, C
Fontana, A
Genova, P
Hayano, R
Jorgensen, L V
Kellerbauer, A
Lagomarsino, V
Landua, R
Macri, M
Manuzio, G
Montagna, P
Regenfus, C
Rotondi, A
Testera, G
Variola, A
van der Werf, D P
author_sort Lodi Rizzini, E
collection CERN
description We describe an experiment performed in the ATHENA apparatus in which there is evidence that the antiproton-proton bound state, protonium, has been produced at very low energies in vacuum following the interaction of cold antiprotons with a trapped cloud of molecular hydrogen ions. The latter were confined in a centrifugally separated belt outside a positron plasma used for antihydrogen formation. Studies have been performed at low positron plasma temperatures in which the protonium annihilation signal has been identified along with that from antihydrogen, and we discuss how their contributions can be disentangled. With the positron plasma heated to around 10000 K the ions become distributed in the positrons, and the majority of the annihilation signal can be explained in terms of protonium formation, as antihydrogen creation is heavily suppressed. In this case we compare the observed protonium formation rate with expectations from theory and find reasonable accord, when experimental systematics are taken into account. The effect on the annihilation signals of the passage of an electron current through a pre-loaded positron plasma has been studied in detail, and the results are presented here for the first time.
id cern-1559760
institution Organización Europea para la Investigación Nuclear
publishDate 2012
record_format invenio
spelling cern-15597602019-09-30T06:29:59Zdoi:10.1140/epjp/i2012-12124-9http://cds.cern.ch/record/1559760Lodi Rizzini, EVenturelli, LZurlo, NCharlton, MAmsler, CBonomi, GCanali, CCarraro, CFontana, AGenova, PHayano, RJorgensen, L VKellerbauer, ALagomarsino, VLandua, RMacri, MManuzio, GMontagna, PRegenfus, CRotondi, ATestera, GVariola, Avan der Werf, D PFurther evidence for low-energy protonium production in vacuumParticle Physics - ExperimentWe describe an experiment performed in the ATHENA apparatus in which there is evidence that the antiproton-proton bound state, protonium, has been produced at very low energies in vacuum following the interaction of cold antiprotons with a trapped cloud of molecular hydrogen ions. The latter were confined in a centrifugally separated belt outside a positron plasma used for antihydrogen formation. Studies have been performed at low positron plasma temperatures in which the protonium annihilation signal has been identified along with that from antihydrogen, and we discuss how their contributions can be disentangled. With the positron plasma heated to around 10000 K the ions become distributed in the positrons, and the majority of the annihilation signal can be explained in terms of protonium formation, as antihydrogen creation is heavily suppressed. In this case we compare the observed protonium formation rate with expectations from theory and find reasonable accord, when experimental systematics are taken into account. The effect on the annihilation signals of the passage of an electron current through a pre-loaded positron plasma has been studied in detail, and the results are presented here for the first time.oai:cds.cern.ch:15597602012
spellingShingle Particle Physics - Experiment
Lodi Rizzini, E
Venturelli, L
Zurlo, N
Charlton, M
Amsler, C
Bonomi, G
Canali, C
Carraro, C
Fontana, A
Genova, P
Hayano, R
Jorgensen, L V
Kellerbauer, A
Lagomarsino, V
Landua, R
Macri, M
Manuzio, G
Montagna, P
Regenfus, C
Rotondi, A
Testera, G
Variola, A
van der Werf, D P
Further evidence for low-energy protonium production in vacuum
title Further evidence for low-energy protonium production in vacuum
title_full Further evidence for low-energy protonium production in vacuum
title_fullStr Further evidence for low-energy protonium production in vacuum
title_full_unstemmed Further evidence for low-energy protonium production in vacuum
title_short Further evidence for low-energy protonium production in vacuum
title_sort further evidence for low-energy protonium production in vacuum
topic Particle Physics - Experiment
url https://dx.doi.org/10.1140/epjp/i2012-12124-9
http://cds.cern.ch/record/1559760
work_keys_str_mv AT lodirizzinie furtherevidenceforlowenergyprotoniumproductioninvacuum
AT venturellil furtherevidenceforlowenergyprotoniumproductioninvacuum
AT zurlon furtherevidenceforlowenergyprotoniumproductioninvacuum
AT charltonm furtherevidenceforlowenergyprotoniumproductioninvacuum
AT amslerc furtherevidenceforlowenergyprotoniumproductioninvacuum
AT bonomig furtherevidenceforlowenergyprotoniumproductioninvacuum
AT canalic furtherevidenceforlowenergyprotoniumproductioninvacuum
AT carraroc furtherevidenceforlowenergyprotoniumproductioninvacuum
AT fontanaa furtherevidenceforlowenergyprotoniumproductioninvacuum
AT genovap furtherevidenceforlowenergyprotoniumproductioninvacuum
AT hayanor furtherevidenceforlowenergyprotoniumproductioninvacuum
AT jorgensenlv furtherevidenceforlowenergyprotoniumproductioninvacuum
AT kellerbauera furtherevidenceforlowenergyprotoniumproductioninvacuum
AT lagomarsinov furtherevidenceforlowenergyprotoniumproductioninvacuum
AT landuar furtherevidenceforlowenergyprotoniumproductioninvacuum
AT macrim furtherevidenceforlowenergyprotoniumproductioninvacuum
AT manuziog furtherevidenceforlowenergyprotoniumproductioninvacuum
AT montagnap furtherevidenceforlowenergyprotoniumproductioninvacuum
AT regenfusc furtherevidenceforlowenergyprotoniumproductioninvacuum
AT rotondia furtherevidenceforlowenergyprotoniumproductioninvacuum
AT testerag furtherevidenceforlowenergyprotoniumproductioninvacuum
AT variolaa furtherevidenceforlowenergyprotoniumproductioninvacuum
AT vanderwerfdp furtherevidenceforlowenergyprotoniumproductioninvacuum