Measurement of the top quark mass in the dilepton final state using the matrix element method
Description
The top quark, discovered in 1995 by the CDF and D0 experiments at the Fermilab Tevatron Collider, is the heaviest known fundamental particle. The precise knowledge of its mass yields important constraints on the mass of the yet-unobserved Higgs boson and allows to probe for physics beyond the Standard Model. The first measurement of the top quark mass in the dilepton channel with the Matrix Element method at the D0 experiment is presented. After a short description of the experimental environment and the reconstruction chain from hits in the detector to physical objects, a detailed review of the Matrix Element method is given. The Matrix Element method is based on the likelihood to observe a given event under the assumption of the quantity to be measured, e.g. the mass of the top quark. The method has undergone significant modifications and improvements compared to previous measurements in the lepton+jets channel: the two undetected neutrinos require a new reconstruction scheme for the four-momenta of the final state particles, the small event sample demands the modeling of additional jets in the signal likelihood, and a new likelihood is designed to account for the main source of background containing tauonic Z decay. The Matrix Element method is validated on Monte Carlo simulated events at the generator level. For the measurement, calibration curves are derived from events that are run through the full D0 detector simulation. The analysis makes use of the Run II data set recorded between April 2002 and May 2008 corresponding to an integrated luminosity of 2.8 fb-1. A total of 107 t(bar t) candidate events with one electron and one muon in the final state are selected. Applying the Matrix Element method to this data set, the top quark mass is measured to be mtopRunIIa = 170.6 ± 6.1(stat.)-1.5+2.1(syst.)GeV; mtopRunIIb = 174.1 ± 4.4(stat.)-1.8+2.5(syst.)GeV; mtopcomb = 172.9 ± 3.6(stat.) ± 2.3(syst.)GeV. Systematic uncertainties are discussed, and the results are interpreted within the Standard Model of particle physics. As the main systematic uncertainty on the top quark mass comes from the knowledge of the absolute jet energy scale, studies for a simultaneous measurement of the top quark mass and the b jet energy scale are presented. The prospects that such a simultaneous determination offer for future measurements of the top quark mass are outlined.
Availability note (English)
Available from http://lss.fnal.gov/cgi-bin/find_paper.pl?thesis-2008-92.pdf; PURL: https://www.osti.gov/servlets/purl/968350-MdL3sd/Additional details
Identifiers
Publishing Information
- Imprint Pagination
- 153 p.
- Report number
- FERMILAB-THESIS--2008-92
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 41016862
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Resource subtype / Literary indicator
- Thesis, Non-conventional Literature
- Descriptors DEI
- CALIBRATION; ELECTRONS; FERMILAB COLLIDER DETECTOR; FERMILAB TEVATRON; HIGGS BOSONS; LUMINOSITY; MATRIX ELEMENTS; MODIFICATIONS; MUONS; NEUTRINOS; STANDARD MODEL; T QUARKS
- Descriptors DEC
- ACCELERATORS; BOSONS; CYCLIC ACCELERATORS; ELEMENTARY PARTICLES; FERMIONS; FIELD THEORIES; GRAND UNIFIED THEORY; LEPTONS; MASSLESS PARTICLES; MATHEMATICAL MODELS; MEASURING INSTRUMENTS; OPTICAL PROPERTIES; PARTICLE MODELS; PHYSICAL PROPERTIES; POSTULATED PARTICLES; QUANTUM FIELD THEORY; QUARKS; RADIATION DETECTORS; SYNCHROTRONS; TOP PARTICLES; UNIFIED GAUGE MODELS
Optional Information
- Contract/Grant/Project number
- AC02-76CH03000
- Notes
- Submitted to Ludwig-Maximilians-Universitaet Muenchen (DE)
- Funding organization
- US Department of Energy (United States)