Cargando…

Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD

We analyze the energy spectra of $single$ b-jets and B-hadrons resulting from the production and decay of top quarks within the SM at the LHC at the NLO QCD. For both hadrons and jets, we calculate the correlation of the peak of the spectrum with the top quark mass, considering the "energy-peak...

Descripción completa

Detalles Bibliográficos
Autores principales: Agashe, Kaustubh, Franceschini, Roberto, Kim, Doojin, Schulze, Markus
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1140/epjc/s10052-016-4494-x
http://cds.cern.ch/record/2138759
_version_ 1780950062793228288
author Agashe, Kaustubh
Franceschini, Roberto
Kim, Doojin
Schulze, Markus
author_facet Agashe, Kaustubh
Franceschini, Roberto
Kim, Doojin
Schulze, Markus
author_sort Agashe, Kaustubh
collection CERN
description We analyze the energy spectra of $single$ b-jets and B-hadrons resulting from the production and decay of top quarks within the SM at the LHC at the NLO QCD. For both hadrons and jets, we calculate the correlation of the peak of the spectrum with the top quark mass, considering the "energy-peak" as an observable to determine the top quark mass. Such a method is motivated by our previous work where we argued that this approach can have reduced sensitivity to the details of the production mechanism of the top quark, whether it is higher-order QCD effects or new physics contributions. As part of the NLO improvement over the original proposal, we assess the residual sensitivity of the extracted top quark mass to perturbative effects both in top quark production and decay. For a 1% jet energy scale uncertainty (and assuming negligible statistical error), the top quark mass can then be extracted using the energy-peak of b-jets with an error +- (1.2 (exp) + 0.6(th)) GeV. We note that recently the CMS collaboration reported a top quark mass measurement based on the original proposal (with b-jets) so that our result contributes to a precise evaluation of the associated theory uncertainty. In view of the dominant jet energy scale uncertainty in the measurement using b-jets, we also investigate the extraction of the top quark mass from the energy-peak of the corresponding B-hadrons which, in principle, can be measured without this uncertainty. The calculation of the B-hadron energy spectrum is carried out using fragmentation functions at NLO. The dependence on the fragmentation scale turns out to be the largest theoretical uncertainty in this extraction of top quark mass. Future improvement of the treatment of bottom quark hadronization can reduce this uncertainty, rendering methods based on the B-hadron energy-peak competitive for the top quark mass measurement.
id cern-2138759
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2016
record_format invenio
spelling cern-21387592022-08-10T12:40:37Zdoi:10.1140/epjc/s10052-016-4494-xhttp://cds.cern.ch/record/2138759engAgashe, KaustubhFranceschini, RobertoKim, DoojinSchulze, MarkusTop quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCDParticle Physics - PhenomenologyWe analyze the energy spectra of $single$ b-jets and B-hadrons resulting from the production and decay of top quarks within the SM at the LHC at the NLO QCD. For both hadrons and jets, we calculate the correlation of the peak of the spectrum with the top quark mass, considering the "energy-peak" as an observable to determine the top quark mass. Such a method is motivated by our previous work where we argued that this approach can have reduced sensitivity to the details of the production mechanism of the top quark, whether it is higher-order QCD effects or new physics contributions. As part of the NLO improvement over the original proposal, we assess the residual sensitivity of the extracted top quark mass to perturbative effects both in top quark production and decay. For a 1% jet energy scale uncertainty (and assuming negligible statistical error), the top quark mass can then be extracted using the energy-peak of b-jets with an error +- (1.2 (exp) + 0.6(th)) GeV. We note that recently the CMS collaboration reported a top quark mass measurement based on the original proposal (with b-jets) so that our result contributes to a precise evaluation of the associated theory uncertainty. In view of the dominant jet energy scale uncertainty in the measurement using b-jets, we also investigate the extraction of the top quark mass from the energy-peak of the corresponding B-hadrons which, in principle, can be measured without this uncertainty. The calculation of the B-hadron energy spectrum is carried out using fragmentation functions at NLO. The dependence on the fragmentation scale turns out to be the largest theoretical uncertainty in this extraction of top quark mass. Future improvement of the treatment of bottom quark hadronization can reduce this uncertainty, rendering methods based on the B-hadron energy-peak competitive for the top quark mass measurement.We analyze the energy spectra of single b-jets and B-hadrons resulting from the production and decay of top quarks within the SM at the LHC at the NLO QCD. For both hadrons and jets, we calculate the correlation of the peak of the spectrum with the top quark mass, considering the “energy peak” as an observable to determine the top quark mass. Such a method is motivated by our previous work where we argued that this approach can have reduced sensitivity to the details of the production mechanism of the top quark, whether it concerns higher-order QCD effects or new physics contributions. For a 1% jet energy scale uncertainty, the top quark mass can then be extracted using the energy peak of b-jets with an error $\pm (1.2 (\hbox {exp}) + 0.6(\hbox {th})) \hbox { GeV}$ . In view of the dominant jet energy scale uncertainty in the measurement using b-jets, we also investigate the extraction of the top quark mass from the energy peak of the corresponding B-hadrons which, in principle, can be measured without this uncertainty. The calculation of the B-hadron energy spectrum is carried out using fragmentation functions at NLO. The dependence on the fragmentation scale turns out to be the largest theoretical uncertainty in this extraction of top quark mass.We analyze the energy spectra of $single$ b-jets and B-hadrons resulting from the production and decay of top quarks within the SM at the LHC at the NLO QCD. For both hadrons and jets, we calculate the correlation of the peak of the spectrum with the top quark mass, considering the "energy-peak" as an observable to determine the top quark mass. Such a method is motivated by our previous work where we argued that this approach can have reduced sensitivity to the details of the production mechanism of the top quark, whether it is higher-order QCD effects or new physics contributions. As part of the NLO improvement over the original proposal, we assess the residual sensitivity of the extracted top quark mass to perturbative effects both in top quark production and decay. For a 1% jet energy scale uncertainty (and assuming negligible statistical error), the top quark mass can then be extracted using the energy-peak of b-jets with an error +- (1.2 (exp) + 0.6(th)) GeV. We note that recently the CMS collaboration reported a top quark mass measurement based on the original proposal (with b-jets) so that our result contributes to a precise evaluation of the associated theory uncertainty. In view of the dominant jet energy scale uncertainty in the measurement using b-jets, we also investigate the extraction of the top quark mass from the energy-peak of the corresponding B-hadrons which, in principle, can be measured without this uncertainty. The calculation of the B-hadron energy spectrum is carried out using fragmentation functions at NLO. The dependence on the fragmentation scale turns out to be the largest theoretical uncertainty in this extraction of top quark mass. Future improvement of the treatment of bottom quark hadronization can reduce this uncertainty, rendering methods based on the B-hadron energy-peak competitive for the top quark mass measurement.arXiv:1603.03445CERN-TH-2016-041UMD-PP-016-003CERN-TH-2016-041UMD-PP-016-003oai:cds.cern.ch:21387592016-03-10
spellingShingle Particle Physics - Phenomenology
Agashe, Kaustubh
Franceschini, Roberto
Kim, Doojin
Schulze, Markus
Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title_full Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title_fullStr Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title_full_unstemmed Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title_short Top quark mass determination from the energy peaks of b-jets and B-hadrons at NLO QCD
title_sort top quark mass determination from the energy peaks of b-jets and b-hadrons at nlo qcd
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1140/epjc/s10052-016-4494-x
http://cds.cern.ch/record/2138759
work_keys_str_mv AT agashekaustubh topquarkmassdeterminationfromtheenergypeaksofbjetsandbhadronsatnloqcd
AT franceschiniroberto topquarkmassdeterminationfromtheenergypeaksofbjetsandbhadronsatnloqcd
AT kimdoojin topquarkmassdeterminationfromtheenergypeaksofbjetsandbhadronsatnloqcd
AT schulzemarkus topquarkmassdeterminationfromtheenergypeaksofbjetsandbhadronsatnloqcd