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The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model

We compute the upper bound on the mass of the lightest Higgs boson in the Minimal Supersymmetric Standard Model in a model-independent way, including leading (one-loop) and next-to-leading order (two-loop) radiative corrections. We find that (contrary to some recent claims) the two-loop corrections...

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Autores principales: Casas, J.A., Espinosa, J.R., Quiros, M., Riotto, A.
Lenguaje:eng
Publicado: 1995
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0550-3213(94)00508-C
https://dx.doi.org/10.1016/0550-3213(95)00057-Y
http://cds.cern.ch/record/267072
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author Casas, J.A.
Espinosa, J.R.
Quiros, M.
Riotto, A.
author_facet Casas, J.A.
Espinosa, J.R.
Quiros, M.
Riotto, A.
author_sort Casas, J.A.
collection CERN
description We compute the upper bound on the mass of the lightest Higgs boson in the Minimal Supersymmetric Standard Model in a model-independent way, including leading (one-loop) and next-to-leading order (two-loop) radiative corrections. We find that (contrary to some recent claims) the two-loop corrections are negative with respect to the one-loop result and relatively small ($\simlt 3$\%). After defining physical (pole) top quark mass $M_t$, by including QCD self-energies, and physical Higgs mass $M_H$, by including the electroweak self-energies $\Pi\left(M_H~2\right)-\Pi(0)$, we obtain the upper limit on $M_H$ as a function of supersymmetric parameters. We include as supersymmetric parameters the scale of supersymmetry breaking $M_S$, the value of $\tan \beta$ and the mixing between stops $X_t= A_t + \mu \cot\beta$ (which is responsible for the threshold correction on the Higgs quartic coupling). Our results do not depend on further details of the supersymmetric model. In particular, for $M_S\leq 1$ TeV, maximal threshold effect $X_t~2=6M_S~2$ and any value of $\tan\beta$, we find $M_H\leq 140$ GeV for $M_t\leq 190$ GeV. In the particular scenario where the top is in its infrared fixed point we find $M_H\leq 86$ GeV for $M_t = 170$ GeV.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1995
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spelling cern-2670722019-09-30T06:29:59Zdoi:10.1016/0550-3213(94)00508-Cdoi:10.1016/0550-3213(95)00057-Yhttp://cds.cern.ch/record/267072engCasas, J.A.Espinosa, J.R.Quiros, M.Riotto, A.The lightest Higgs boson mass in the Minimal Supersymmetric Standard ModelParticle Physics - TheoryWe compute the upper bound on the mass of the lightest Higgs boson in the Minimal Supersymmetric Standard Model in a model-independent way, including leading (one-loop) and next-to-leading order (two-loop) radiative corrections. We find that (contrary to some recent claims) the two-loop corrections are negative with respect to the one-loop result and relatively small ($\simlt 3$\%). After defining physical (pole) top quark mass $M_t$, by including QCD self-energies, and physical Higgs mass $M_H$, by including the electroweak self-energies $\Pi\left(M_H~2\right)-\Pi(0)$, we obtain the upper limit on $M_H$ as a function of supersymmetric parameters. We include as supersymmetric parameters the scale of supersymmetry breaking $M_S$, the value of $\tan \beta$ and the mixing between stops $X_t= A_t + \mu \cot\beta$ (which is responsible for the threshold correction on the Higgs quartic coupling). Our results do not depend on further details of the supersymmetric model. In particular, for $M_S\leq 1$ TeV, maximal threshold effect $X_t~2=6M_S~2$ and any value of $\tan\beta$, we find $M_H\leq 140$ GeV for $M_t\leq 190$ GeV. In the particular scenario where the top is in its infrared fixed point we find $M_H\leq 86$ GeV for $M_t = 170$ GeV.We compute the upper bound on the mass of the lightest Higgs boson in the Minimal Supersymmetric Standard Model in a model-independent way, including leading (one-loop) and next-to-leading order (two-loop) radiative corrections. We find that (contrary to some recent claims) the two-loop corrections are negative with respect to the one-loop result and relatively small (⪅ 3%). After defining physical (pole) top quark mass M t , by including QCD self-energies, and physical Higgs mass M H , by including the electroweak self-energies ∏ ( M H 2 ) − ∏ (0), we obtain the upper limit on M H as a function of supersymmetric parameters. We include as supersymmetric parameters the scale of supersymmetry breaking M s , the value of tan β and the mixing between stops X t = At + μ cot β (which is responsible for the threshold correction on the Higgs quartic coupling). Our results do not depend on further details of the supersymmetric model. In particular, for M s ⩽ 1 TeV, maximal threshold effect X t 2 = 6 M S 2 and any value of tan β, we find M H ⩽ 140 GeV for M t ⩽ 190 GeV. In the particular scenario where the top is in its infrared fixed point we find M H ⩽ 86 GeV for M t = 170 GeV.hep-ph/9407389CERN-TH-7334-94IEM-FT-87-94CERN-TH-7334-94IEM-FT-87oai:cds.cern.ch:2670721995
spellingShingle Particle Physics - Theory
Casas, J.A.
Espinosa, J.R.
Quiros, M.
Riotto, A.
The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title_full The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title_fullStr The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title_full_unstemmed The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title_short The lightest Higgs boson mass in the Minimal Supersymmetric Standard Model
title_sort lightest higgs boson mass in the minimal supersymmetric standard model
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/0550-3213(94)00508-C
https://dx.doi.org/10.1016/0550-3213(95)00057-Y
http://cds.cern.ch/record/267072
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