Reimagining e+e− collider precision luminosity measurements

Our recent work has shown that a novel much higher granularity forward calorimetry concept can enable much more detailed and precise reconstruction than the baseline designs based on LEP luminometers, along with the capability of electron/positron/photon separation. This new calorimeter concept is d...

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Main Authors: Wilson Graham, Madison Brendon
Format: Article
Language:English
Published: EDP Sciences 2024-01-01
Series:EPJ Web of Conferences
Online Access:https://www.epj-conferences.org/articles/epjconf/pdf/2024/25/epjconf_lcws2024_01024.pdf
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author Wilson Graham
Madison Brendon
author_facet Wilson Graham
Madison Brendon
author_sort Wilson Graham
collection DOAJ
description Our recent work has shown that a novel much higher granularity forward calorimetry concept can enable much more detailed and precise reconstruction than the baseline designs based on LEP luminometers, along with the capability of electron/positron/photon separation. This new calorimeter concept is designed primarily to maximize the acceptance for e+e− → γγ as an alternative luminosity process, where it serves to define the inner edge of the acceptance (there is no outer edge, as the complete detector is used in the measurement), while continuing to provide the standard luminosity measurement from small-angle Bhabha scattering (SABS). It will also serve as a general forward electromagnetic calorimeter helping ensure hermeticity and detecting individual electrons, positrons, and photons. In this contribution we highlight the Bhabha rejection capability in the context of the e+e− → γγ luminosity measurement and motivate the utility of a Bhabha “mini-tracker” consisting of a few planes of upstream thin silicon detectors. This could further refine the e+/e− polar angle measurement, aid with charge measurement, improve Bhabha rejection (for γγ), and, last-but-not-least, help mitigate the beam-induced electromagnetic deflection that biases the Bhabha acceptance by providing high precision longitudinal vertex information in Bhabha events, which can be used to diagnose this effect of the beam on the final-state electron and positron.
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spelling doaj-art-614a91bb2b3f4d52b6ae1002bb0e911e2025-01-06T11:33:47ZengEDP SciencesEPJ Web of Conferences2100-014X2024-01-013150102410.1051/epjconf/202431501024epjconf_lcws2024_01024Reimagining e+e− collider precision luminosity measurementsWilson Graham0Madison Brendon1Department of Physics and Astronomy, University of KansasDepartment of Physics and Astronomy, University of KansasOur recent work has shown that a novel much higher granularity forward calorimetry concept can enable much more detailed and precise reconstruction than the baseline designs based on LEP luminometers, along with the capability of electron/positron/photon separation. This new calorimeter concept is designed primarily to maximize the acceptance for e+e− → γγ as an alternative luminosity process, where it serves to define the inner edge of the acceptance (there is no outer edge, as the complete detector is used in the measurement), while continuing to provide the standard luminosity measurement from small-angle Bhabha scattering (SABS). It will also serve as a general forward electromagnetic calorimeter helping ensure hermeticity and detecting individual electrons, positrons, and photons. In this contribution we highlight the Bhabha rejection capability in the context of the e+e− → γγ luminosity measurement and motivate the utility of a Bhabha “mini-tracker” consisting of a few planes of upstream thin silicon detectors. This could further refine the e+/e− polar angle measurement, aid with charge measurement, improve Bhabha rejection (for γγ), and, last-but-not-least, help mitigate the beam-induced electromagnetic deflection that biases the Bhabha acceptance by providing high precision longitudinal vertex information in Bhabha events, which can be used to diagnose this effect of the beam on the final-state electron and positron.https://www.epj-conferences.org/articles/epjconf/pdf/2024/25/epjconf_lcws2024_01024.pdf
spellingShingle Wilson Graham
Madison Brendon
Reimagining e+e− collider precision luminosity measurements
EPJ Web of Conferences
title Reimagining e+e− collider precision luminosity measurements
title_full Reimagining e+e− collider precision luminosity measurements
title_fullStr Reimagining e+e− collider precision luminosity measurements
title_full_unstemmed Reimagining e+e− collider precision luminosity measurements
title_short Reimagining e+e− collider precision luminosity measurements
title_sort reimagining e e collider precision luminosity measurements
url https://www.epj-conferences.org/articles/epjconf/pdf/2024/25/epjconf_lcws2024_01024.pdf
work_keys_str_mv AT wilsongraham reimaginingeecolliderprecisionluminositymeasurements
AT madisonbrendon reimaginingeecolliderprecisionluminositymeasurements