Cargando…
Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee
The Future Circular Collider (FCC-ee) offers the unique opportunity of studying the Higgs Yukawa coupling to the electron, $y_\mathrm {e}$, via resonant s-channel production, $\mathrm {e^+e^-}\rightarrow \mathrm {H}$, in a dedicated run at $\sqrt{s} = m_\mathrm {H}$. The signature for direct Higgs p...
Autores principales: | , , |
---|---|
Lenguaje: | eng |
Publicado: |
2021
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.1140/epjp/s13360-021-02204-2 http://cds.cern.ch/record/2775801 |
_version_ | 1780971592897003520 |
---|---|
author | d'Enterria, David Poldaru, Andres Wojcik, George |
author_facet | d'Enterria, David Poldaru, Andres Wojcik, George |
author_sort | d'Enterria, David |
collection | CERN |
description | The Future Circular Collider (FCC-ee) offers the unique opportunity of studying the Higgs Yukawa coupling to the electron, $y_\mathrm {e}$, via resonant s-channel production, $\mathrm {e^+e^-}\rightarrow \mathrm {H}$, in a dedicated run at $\sqrt{s} = m_\mathrm {H}$. The signature for direct Higgs production is a small rise in the cross sections for particular final states, consistent with Higgs decays, over the expectations for their occurrence due to Standard Model (SM) background processes involving $\mathrm {Z}^*$, $\gamma ^*$, or t-channel exchanges alone. Performing such a measurement is remarkably challenging for four main reasons. First, the low value of the e$^\pm $ mass leads to a tiny $y_\mathrm {e}$ coupling and correspondingly small cross section: $\sigma _\mathrm {ee\rightarrow H} \propto m_\mathrm {e}^2 = 0.57$ fb accounting for initial-state $\gamma $ radiation. Second, the $\mathrm {e^+e^-}$ beams must be monochromatized such that the spread of their centre-of-mass (c.m.) energy is commensurate with the narrow width of the SM Higgs boson, $\varGamma _\mathrm {H} = 4.1$ MeV, while keeping large beam luminosities. Third, the Higgs mass must also be known beforehand with a few-MeV accuracy in order to operate the collider at the resonance peak, $\sqrt{s} = m_\mathrm {H}$. Last but not least, the cross sections of the background processes are many orders-of-magnitude larger than those of the Higgs decay signals. A preliminary generator-level study of 11 Higgs decay channels using a multivariate analysis, which exploits boosted decision trees to discriminate signal and background events, identifies two final states as the most promising ones in terms of statistical significance: $\mathrm {H}\rightarrow gg$ and $\mathrm {H}\rightarrow \mathrm {W}\mathrm {W}^*\!\rightarrow \ell \nu $ + 2 jets. For a benchmark monochromatization with 4.1-MeV c.m. energy spread (leading to $\sigma _\mathrm {ee\rightarrow H} = 0.28$ fb) and 10 ab$^{-1}$ of integrated luminosity, a $1.3\sigma $ signal significance can be reached, corresponding to an upper limit on the e$^\pm $ Yukawa coupling at 1.6 times the SM value: $|y_\mathrm {e}|<1.6|y^\mathrm {\textsc {sm}}_\mathrm {e}|$ at 95% confidence level, per FCC-ee interaction point per year. Directions for future improvements of the study are outlined. |
id | cern-2775801 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2021 |
record_format | invenio |
spelling | cern-27758012023-07-27T09:28:11Zdoi:10.1140/epjp/s13360-021-02204-2http://cds.cern.ch/record/2775801engd'Enterria, DavidPoldaru, AndresWojcik, GeorgeMeasuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-eehep-phParticle Physics - Phenomenologyhep-exParticle Physics - ExperimentThe Future Circular Collider (FCC-ee) offers the unique opportunity of studying the Higgs Yukawa coupling to the electron, $y_\mathrm {e}$, via resonant s-channel production, $\mathrm {e^+e^-}\rightarrow \mathrm {H}$, in a dedicated run at $\sqrt{s} = m_\mathrm {H}$. The signature for direct Higgs production is a small rise in the cross sections for particular final states, consistent with Higgs decays, over the expectations for their occurrence due to Standard Model (SM) background processes involving $\mathrm {Z}^*$, $\gamma ^*$, or t-channel exchanges alone. Performing such a measurement is remarkably challenging for four main reasons. First, the low value of the e$^\pm $ mass leads to a tiny $y_\mathrm {e}$ coupling and correspondingly small cross section: $\sigma _\mathrm {ee\rightarrow H} \propto m_\mathrm {e}^2 = 0.57$ fb accounting for initial-state $\gamma $ radiation. Second, the $\mathrm {e^+e^-}$ beams must be monochromatized such that the spread of their centre-of-mass (c.m.) energy is commensurate with the narrow width of the SM Higgs boson, $\varGamma _\mathrm {H} = 4.1$ MeV, while keeping large beam luminosities. Third, the Higgs mass must also be known beforehand with a few-MeV accuracy in order to operate the collider at the resonance peak, $\sqrt{s} = m_\mathrm {H}$. Last but not least, the cross sections of the background processes are many orders-of-magnitude larger than those of the Higgs decay signals. A preliminary generator-level study of 11 Higgs decay channels using a multivariate analysis, which exploits boosted decision trees to discriminate signal and background events, identifies two final states as the most promising ones in terms of statistical significance: $\mathrm {H}\rightarrow gg$ and $\mathrm {H}\rightarrow \mathrm {W}\mathrm {W}^*\!\rightarrow \ell \nu $ + 2 jets. For a benchmark monochromatization with 4.1-MeV c.m. energy spread (leading to $\sigma _\mathrm {ee\rightarrow H} = 0.28$ fb) and 10 ab$^{-1}$ of integrated luminosity, a $1.3\sigma $ signal significance can be reached, corresponding to an upper limit on the e$^\pm $ Yukawa coupling at 1.6 times the SM value: $|y_\mathrm {e}|<1.6|y^\mathrm {\textsc {sm}}_\mathrm {e}|$ at 95% confidence level, per FCC-ee interaction point per year. Directions for future improvements of the study are outlined.The Future Circular Collider (FCC-ee) offers the unique opportunity of studying the Higgs coupling to the electron, $y_e$, via resonant s-channel production, $e^+e^- \to H$, in a dedicated run at $\sqrt{s} = m_H$. The signature for direct Higgs production is a small rise in cross sections for particular final states, consistent with Higgs decays, over the expectations for their occurrence due to SM background processes involving $Z^*,\gamma^*$, or t-channel exchanges. Performing such a measurement is remarkably challenging for four main reasons. First, the low value of the e$^\pm$ mass leads to a tiny $y_e$ coupling, and correspondingly small cross section: $\sigma_{ee\to H}\,\propto m_e^2 = 0.57$ fb accounting for initial-state radiation. Second, the $e^+e^-$ beams must be monochromatized such that their c.m. energy spread is commensurate with the narrow width of the SM Higgs boson, $\Gamma_H = 4.1$ MeV, while keeping large beam luminosities. Third, the Higgs mass must also be known beforehand with a few-MeV accuracy in order to operate the collider at the resonance peak, $\sqrt{s} = m_H$. Last but not least, the cross sections of the background processes are many orders-of-magnitude larger than those of the Higgs decay signals. A generator-level study of 11 Higgs decays using a multivariate analysis, exploiting BDTs to discriminate signal and background events, identifies two final states as the most promising ones in terms of statistical significance: $H\to gg$ and $H\to WW^*\to\ell\nu$ + 2 jets. For a benchmark 4.1-MeV c.m. energy spread (leading to $\sigma_{ee\to H}\, = 0.28$ fb) and $\mathcal{L}_{int}=10$ ab$^{-1}$, a $1.3\sigma$ signal significance can be reached, corresponding to an upper limit on the e$^\pm$ Yukawa at 1.6 times the SM value: $|y_e|<1.6|y^{SM}_e|$ at 95% confidence level, per IP per year. Directions for future improvements of the study are outlined.arXiv:2107.02686oai:cds.cern.ch:27758012021-07-06 |
spellingShingle | hep-ph Particle Physics - Phenomenology hep-ex Particle Physics - Experiment d'Enterria, David Poldaru, Andres Wojcik, George Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title | Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title_full | Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title_fullStr | Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title_full_unstemmed | Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title_short | Measuring the electron Yukawa coupling via resonant s-channel Higgs production at FCC-ee |
title_sort | measuring the electron yukawa coupling via resonant s-channel higgs production at fcc-ee |
topic | hep-ph Particle Physics - Phenomenology hep-ex Particle Physics - Experiment |
url | https://dx.doi.org/10.1140/epjp/s13360-021-02204-2 http://cds.cern.ch/record/2775801 |
work_keys_str_mv | AT denterriadavid measuringtheelectronyukawacouplingviaresonantschannelhiggsproductionatfccee AT poldaruandres measuringtheelectronyukawacouplingviaresonantschannelhiggsproductionatfccee AT wojcikgeorge measuringtheelectronyukawacouplingviaresonantschannelhiggsproductionatfccee |