Charge Asymmetry in Top Quark Pair Production
Abstract
:1. Introduction
2. Charge Asymmetry in Production
2.1. Top Quark Production in the SM at Hadron Colliders
2.2. Charge Asymmetry in QED and EW Theory
2.3. Charge Asymmetry in QCD
2.4. Top Quark Pair Charge Asymmetry
2.5. Asymmetry Definitions
2.5.1. Asymmetry Definitions for Tevatron
2.5.2. Asymmetry Definitions for LHC
3. Theory Overview
3.1. SM Predictions
Summary of SM Predictions
3.2. BSM Models
- axigluons (a color octet vector ): massive gluons with axial currents (’axigluons’). Similarly to EW theory with the axial current which has a massless photon and a massive Z boson and there is an asymmetry due to the interference already at LO, the interference between gluon and axigluon in the s-channel mediating process produces a charge asymmetry;
- (a neutral vector boson ): a flavour violating Z’ exchanged in the t-channel in ;
- (a charged boson ): a boson with right-handed couplings exchanged in the t-channel in ;
- (color-triplet scalar): a color triplet with right-handed flavour-violating couplings exchanged in the u-channel in ;
- (color-sextet scalar): similarly as above, a color sextet with right-handed flavour-violating couplings exchanged in the u-channel. There may be diagonal , couplings, in contrast with the triplet above;
- (scalar isodoublet): a color-singlet Higgs-like isodoublet, which contains neutral and charged scalars, coupling the top quark to the first generation and exchanged in the t-channel.
4. Experimental Measurements
4.1. Forward–Backward Asymmetry Measurements at the Tevatron
4.1.1. Initial Measurements
4.1.2. Measurements with Half of Run II Statistics
4.1.3. Measurements with Full Statistics
4.1.4. Full Dataset Combinations
4.1.5. Summary and Discussion of Tevatron Measurements
4.2. LHC Measurements
4.2.1. Measurements at TeV
4.2.2. Measurements at TeV
4.2.3. Measurements at TeV
4.2.4. Summary of LHC Measurements
5. Discussion and Outlook
6. Conclusions
Funding
Acknowledgments
Conflicts of Interest
References
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Prediction | [%] | [%] | [%] |
---|---|---|---|
NLO QCD [12,13] | 4–5 (lab) | ||
NLO QCD [30] | () | ||
NLO QCD [30] | (, ex) | ||
NLO QCD [23] | (lab, ex) | ||
NLO QCD [23] | (, ex) | ||
NLOW [23] | (lab, ex) | ||
NLOW [23] | (, ex) | ||
NLO QCD + EW [20,21,24,25] | 5–6 (lab) | ||
NLO QCD [24] | (lab, ex) | (ex) | |
NLO QCD + EW [24] | (lab, ex) | (lab, ex) | (ex) |
NLO QCD + EW [24] | (, ex) | ||
NLO QCD + NNLL [30] | (, ex) | ||
NNLO [30] | () | ||
NNLO(matrix) | () | ||
NNLO [30] | (, ex) | ||
aNLO QCD [29] | (, ex) | ||
NNLO QCD + EW [30] | (, ex) | ||
aNLO QCD + EW [29] | (, ex) | ||
PMC [28] | (, ex) |
Prediction | [TeV] | [%] | [%] |
---|---|---|---|
NLO [24] | 7 | (ex) | |
NLO+EW [24] | 7 | (ex) | |
NLO+EW [21] | 7 | (ex) | |
NLO+EW () [21] | 7 | (ex) | |
NNLO (MATRIX) | 7 | ||
PMC [27] | 7 | (ex) | |
NLO [24] | 8 | (ex) | |
NLO+EW [24] | 8 | (ex) | |
NLO [32] | 8 | ||
NLO [32] | 8 | (ex) | |
NLO+EW [32] | 8 | ||
NLO+EW [32] | 8 | (ex) | |
NNLO [32] | 8 | ||
NNLO [32] | 8 | (ex) | |
NNLO+EW [32] | 8 | ||
NNLO+EW [32] | 8 | (ex) | |
PMC [27] | 8 | (ex) | |
NLO+EW [25] | 13 | (ex) | (ex) |
NNLO+EW [88] | 13 | ||
NLO [24] | 14 | (ex) | (ex) |
NLO+EW [24,25] | 14 | (ex) | (ex) |
PMC [27] | 14 | (ex) |
Number of Jets | (mc@nlo) [%] | (data) [%] |
---|---|---|
≥4 | ||
4 | ||
≥5 |
Sample | Level | [%] | [%] |
---|---|---|---|
data | reco (with background) | ||
mc@nlo | reco (with background) | ||
data | reco (without background) | ||
mc@nlo | reco (without background) | ||
data | parton | ||
mcfm | parton |
Subsample | (Data) [%] | (mc@nlo) [%] |
---|---|---|
Experiment, Channel | [] | [%] | [%] | [%] |
---|---|---|---|---|
CDF, jets | 1.9 | |||
CDF, jets | 5.3 | |||
D0, jets | 5.4 | |||
D0, dilepton | 5.4 | |||
D0, combination | 5.4 | |||
CDF, jets | 9.4 | |||
CDF, dil | 9.1 | |||
D0, jets | 9.7 | |||
D0, dil | 9.7 | |||
CDF, combination | 9.7 | |||
D0, combination | 9.7 | |||
Tevatron, combination | 9.7 |
Experiment, Channel | [TeV] | L [] | [%] | [%] |
---|---|---|---|---|
CMS, jets | 7 | 1.1 | * | |
ATLAS, jets | 7 | 1.1 | ||
CMS, jets | 7 | 5.0 | ||
CMS, dil | 7 | 5.0 | ||
ATLAS, jets | 7 | 4.7 | ||
ATLAS, dil | 7 | 4.6 | ||
LHC, combination | 7 | 5.0 | ||
CMS, jets | 8 | 19.7 | ||
CMS, jets(template) | 8 | 19.6 | ||
CMS, dil | 8 | 19.5 | ||
ATLAS, jets | 8 | 20.3 | ||
ATLAS, dil | 8 | 20.3 | ||
LHC, combination | 8 | 20.3 | ||
CMS, dilepton | 13 | 35.9 | ** | |
ATLAS,jets | 13 | 139 |
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Share and Cite
Lysák, R. Charge Asymmetry in Top Quark Pair Production. Symmetry 2020, 12, 1278. https://doi.org/10.3390/sym12081278
Lysák R. Charge Asymmetry in Top Quark Pair Production. Symmetry. 2020; 12(8):1278. https://doi.org/10.3390/sym12081278
Chicago/Turabian StyleLysák, Roman. 2020. "Charge Asymmetry in Top Quark Pair Production" Symmetry 12, no. 8: 1278. https://doi.org/10.3390/sym12081278
APA StyleLysák, R. (2020). Charge Asymmetry in Top Quark Pair Production. Symmetry, 12(8), 1278. https://doi.org/10.3390/sym12081278