Cargando…

Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence

The barrel section of the novel MIP Timing Detector (MTD) will be constructed as part of the upgrade of the CMS experiment to provide a time resolution for single charged tracks in the range of $30-60$ ps using LYSO:Ce crystal arrays read out with Silicon Photomultipliers (SiPMs). A major challenge...

Descripción completa

Detalles Bibliográficos
Autores principales: Bornheim, A., Lustermann, W., Stachon, K., Gutiérrez, G. Reales, Benaglia, A., De Guio, F., Ghezzi, A., Lucchini, M.T., Malberti, M., Palluotto, S., de Fatis, T. Tabarelli, Benettoni, M., Carlin, R., Tosi, M., Rossin, R., Meridiani, P., Paramatti, R., Santanastasio, F., Silva, J.C., Varela, J., Heering, A., Karneyeu, A., Musienko, Y., Wayne, M., Anderson, T., Cox, B., Lara, C.E. Perez, Ledovskoy, A., White, S., Schmidt, I.
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1748-0221/18/08/P08020
http://cds.cern.ch/record/2866066
_version_ 1780978074535329792
author Bornheim, A.
Lustermann, W.
Stachon, K.
Gutiérrez, G. Reales
Benaglia, A.
De Guio, F.
Ghezzi, A.
Lucchini, M.T.
Malberti, M.
Palluotto, S.
de Fatis, T. Tabarelli
Benettoni, M.
Carlin, R.
Tosi, M.
Rossin, R.
Meridiani, P.
Paramatti, R.
Santanastasio, F.
Silva, J.C.
Varela, J.
Heering, A.
Karneyeu, A.
Musienko, Y.
Wayne, M.
Anderson, T.
Cox, B.
Lara, C.E. Perez
Ledovskoy, A.
White, S.
Schmidt, I.
author_facet Bornheim, A.
Lustermann, W.
Stachon, K.
Gutiérrez, G. Reales
Benaglia, A.
De Guio, F.
Ghezzi, A.
Lucchini, M.T.
Malberti, M.
Palluotto, S.
de Fatis, T. Tabarelli
Benettoni, M.
Carlin, R.
Tosi, M.
Rossin, R.
Meridiani, P.
Paramatti, R.
Santanastasio, F.
Silva, J.C.
Varela, J.
Heering, A.
Karneyeu, A.
Musienko, Y.
Wayne, M.
Anderson, T.
Cox, B.
Lara, C.E. Perez
Ledovskoy, A.
White, S.
Schmidt, I.
author_sort Bornheim, A.
collection CERN
description The barrel section of the novel MIP Timing Detector (MTD) will be constructed as part of the upgrade of the CMS experiment to provide a time resolution for single charged tracks in the range of $30-60$ ps using LYSO:Ce crystal arrays read out with Silicon Photomultipliers (SiPMs). A major challenge for the operation of such a detector is the extremely high radiation level, of about $2\times10^{14}$ 1 MeV(Si) Eqv. n/cm$^2$, that will be integrated over a decade of operation of the High Luminosity Large Hadron Collider (HL-LHC). Silicon Photomultipliers exposed to this level of radiation have shown a strong increase in dark count rate and radiation damage effects that also impact their gain and photon detection efficiency. For this reason during operations the whole detector is cooled down to about $-35^{\circ}$C. In this paper we illustrate an innovative and cost-effective solution to mitigate the impact of radiation damage on the timing performance of the detector, by integrating small thermo-electric coolers (TECs) on the back of the SiPM package. This additional feature, fully integrated as part of the SiPM array, enables a further decrease in operating temperature down to about $-45^{\circ}$C. This leads to a reduction by a factor of about two in the dark count rate without requiring additional power budget, since the power required by the TEC is almost entirely offset by a decrease in the power required for the SiPM operation due to leakage current. In addition, the operation of the TECs with reversed polarity during technical stops of the accelerator can raise the temperature of the SiPMs up to $60^{\circ}$C (about $50^{\circ}$C higher than the rest of the detector), thus accelerating the annealing of radiation damage effects and partly recovering the SiPM performance.
id cern-2866066
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
record_format invenio
spelling cern-28660662023-08-28T15:34:26Zdoi:10.1088/1748-0221/18/08/P08020http://cds.cern.ch/record/2866066engBornheim, A.Lustermann, W.Stachon, K.Gutiérrez, G. RealesBenaglia, A.De Guio, F.Ghezzi, A.Lucchini, M.T.Malberti, M.Palluotto, S.de Fatis, T. TabarelliBenettoni, M.Carlin, R.Tosi, M.Rossin, R.Meridiani, P.Paramatti, R.Santanastasio, F.Silva, J.C.Varela, J.Heering, A.Karneyeu, A.Musienko, Y.Wayne, M.Anderson, T.Cox, B.Lara, C.E. PerezLedovskoy, A.White, S.Schmidt, I.Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluencehep-exParticle Physics - Experimentphysics.ins-detDetectors and Experimental TechniquesThe barrel section of the novel MIP Timing Detector (MTD) will be constructed as part of the upgrade of the CMS experiment to provide a time resolution for single charged tracks in the range of $30-60$ ps using LYSO:Ce crystal arrays read out with Silicon Photomultipliers (SiPMs). A major challenge for the operation of such a detector is the extremely high radiation level, of about $2\times10^{14}$ 1 MeV(Si) Eqv. n/cm$^2$, that will be integrated over a decade of operation of the High Luminosity Large Hadron Collider (HL-LHC). Silicon Photomultipliers exposed to this level of radiation have shown a strong increase in dark count rate and radiation damage effects that also impact their gain and photon detection efficiency. For this reason during operations the whole detector is cooled down to about $-35^{\circ}$C. In this paper we illustrate an innovative and cost-effective solution to mitigate the impact of radiation damage on the timing performance of the detector, by integrating small thermo-electric coolers (TECs) on the back of the SiPM package. This additional feature, fully integrated as part of the SiPM array, enables a further decrease in operating temperature down to about $-45^{\circ}$C. This leads to a reduction by a factor of about two in the dark count rate without requiring additional power budget, since the power required by the TEC is almost entirely offset by a decrease in the power required for the SiPM operation due to leakage current. In addition, the operation of the TECs with reversed polarity during technical stops of the accelerator can raise the temperature of the SiPMs up to $60^{\circ}$C (about $50^{\circ}$C higher than the rest of the detector), thus accelerating the annealing of radiation damage effects and partly recovering the SiPM performance.arXiv:2306.00818oai:cds.cern.ch:28660662023
spellingShingle hep-ex
Particle Physics - Experiment
physics.ins-det
Detectors and Experimental Techniques
Bornheim, A.
Lustermann, W.
Stachon, K.
Gutiérrez, G. Reales
Benaglia, A.
De Guio, F.
Ghezzi, A.
Lucchini, M.T.
Malberti, M.
Palluotto, S.
de Fatis, T. Tabarelli
Benettoni, M.
Carlin, R.
Tosi, M.
Rossin, R.
Meridiani, P.
Paramatti, R.
Santanastasio, F.
Silva, J.C.
Varela, J.
Heering, A.
Karneyeu, A.
Musienko, Y.
Wayne, M.
Anderson, T.
Cox, B.
Lara, C.E. Perez
Ledovskoy, A.
White, S.
Schmidt, I.
Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title_full Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title_fullStr Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title_full_unstemmed Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title_short Integration of thermo-electric coolers on the CMS MTD SiPM arrays for operation under high neutron fluence
title_sort integration of thermo-electric coolers on the cms mtd sipm arrays for operation under high neutron fluence
topic hep-ex
Particle Physics - Experiment
physics.ins-det
Detectors and Experimental Techniques
url https://dx.doi.org/10.1088/1748-0221/18/08/P08020
http://cds.cern.ch/record/2866066
work_keys_str_mv AT bornheima integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT lustermannw integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT stachonk integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT gutierrezgreales integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT benagliaa integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT deguiof integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT ghezzia integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT lucchinimt integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT malbertim integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT palluottos integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT defatisttabarelli integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT benettonim integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT carlinr integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT tosim integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT rossinr integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT meridianip integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT paramattir integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT santanastasiof integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT silvajc integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT varelaj integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT heeringa integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT karneyeua integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT musienkoy integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT waynem integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT andersont integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT coxb integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT laraceperez integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT ledovskoya integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT whites integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence
AT schmidti integrationofthermoelectriccoolersonthecmsmtdsipmarraysforoperationunderhighneutronfluence