Precise prediction of the MSSM Higgs boson masses for low M A

Abstract Precise predictions for Higgs boson masses in the Minimal Supersymmetric Standard Model can be obtained by combining fixed-order calculations with effective field theory (EFT) methods for the resummation of large logarithms in case of heavy super-partners. This hybrid approach is implemente...

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Main Authors: Henning Bahl, Wolfgang Hollik
Format: Article
Language:English
Published: SpringerOpen 2018-07-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP07(2018)182
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spelling doaj-3638c32ba3fa48d8813a97b44ccd99ba2020-11-24T21:53:43ZengSpringerOpenJournal of High Energy Physics1029-84792018-07-012018715010.1007/JHEP07(2018)182Precise prediction of the MSSM Higgs boson masses for low M AHenning Bahl0Wolfgang Hollik1Max-Planck Institut für PhysikMax-Planck Institut für PhysikAbstract Precise predictions for Higgs boson masses in the Minimal Supersymmetric Standard Model can be obtained by combining fixed-order calculations with effective field theory (EFT) methods for the resummation of large logarithms in case of heavy super-partners. This hybrid approach is implemented in the computer code FeynHiggs and has been applied in previous studies for calculating the mass of the lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson for low, intermediate and high SUSY scales. In these works it was assumed that the non-standard Higgs bosons share a common mass scale with the supersymmetric squark particles, leaving the Standard Model as the low-energy EFT. In this article, we relax this restriction and report on the implemention of a Two-Higgs-Doublet Model (THDM) as effective theory below the SUSY scale into our hybrid approach. We explain in detail how our EFT calculation is consistently combined with the fixed-order calculation within the code FeynHiggs. In our numerical investigation we find effects on the mass of the lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson h of up to 9GeV in scenarios with low M A , low tan β and high SUSY scales, when compared with previous versions of FeynHiggs. Comparisons to other publicly available pure EFT codes with a THDM show good agreement. Effects on the mass of the second lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson H are found to be negligible in the phenomenologically interesting parameter regions where H can be traded for h as the experimentally observed Higgs particle.http://link.springer.com/article/10.1007/JHEP07(2018)182Supersymmetry Phenomenology
collection DOAJ
language English
format Article
sources DOAJ
author Henning Bahl
Wolfgang Hollik
spellingShingle Henning Bahl
Wolfgang Hollik
Precise prediction of the MSSM Higgs boson masses for low M A
Journal of High Energy Physics
Supersymmetry Phenomenology
author_facet Henning Bahl
Wolfgang Hollik
author_sort Henning Bahl
title Precise prediction of the MSSM Higgs boson masses for low M A
title_short Precise prediction of the MSSM Higgs boson masses for low M A
title_full Precise prediction of the MSSM Higgs boson masses for low M A
title_fullStr Precise prediction of the MSSM Higgs boson masses for low M A
title_full_unstemmed Precise prediction of the MSSM Higgs boson masses for low M A
title_sort precise prediction of the mssm higgs boson masses for low m a
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2018-07-01
description Abstract Precise predictions for Higgs boson masses in the Minimal Supersymmetric Standard Model can be obtained by combining fixed-order calculations with effective field theory (EFT) methods for the resummation of large logarithms in case of heavy super-partners. This hybrid approach is implemented in the computer code FeynHiggs and has been applied in previous studies for calculating the mass of the lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson for low, intermediate and high SUSY scales. In these works it was assumed that the non-standard Higgs bosons share a common mass scale with the supersymmetric squark particles, leaving the Standard Model as the low-energy EFT. In this article, we relax this restriction and report on the implemention of a Two-Higgs-Doublet Model (THDM) as effective theory below the SUSY scale into our hybrid approach. We explain in detail how our EFT calculation is consistently combined with the fixed-order calculation within the code FeynHiggs. In our numerical investigation we find effects on the mass of the lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson h of up to 9GeV in scenarios with low M A , low tan β and high SUSY scales, when compared with previous versions of FeynHiggs. Comparisons to other publicly available pure EFT codes with a THDM show good agreement. Effects on the mass of the second lightest CP $$ \mathcal{C}\mathcal{P} $$-even Higgs boson H are found to be negligible in the phenomenologically interesting parameter regions where H can be traded for h as the experimentally observed Higgs particle.
topic Supersymmetry Phenomenology
url http://link.springer.com/article/10.1007/JHEP07(2018)182
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