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arXiv · hep-ph/0211417

Dark Matter, Muon g - 2 And Other Accelerator Constraints

Abstract

We review the current status of the Brookhaven muon g - 2 experiment, and it's effects on the SUSY parameter space when combined with dark matter relic density bounds, b->sγand Higgs mass constraints. If the 3σdeviation of g - 2 from the Standard Model value is correct, these data constrain the mSUGRA parameter space strongly, i.e. 300 GeV <~m_{1/2}<~850 GeV, and m_0 (at fixed \tanβ, A_0) is tightly constrained (except at very large \tanβ). Dark matter detection cross sections lie within the range accessible to future planned experiments. A non-universal gluino soft breaking mass however can greatly reduce the lower bound on m_{1/2} (arising from the b->sγconstraint) allowing for relatively light neutralinos, while non-universal Higgs H_2 mass can lead to new regions of allowed relic density where the detection cross sections can be increased by a factor of 10 or more.

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BibTeXRIS

R. Arnowitt, B. Dutta. 2003-04-22. Dark Matter, Muon g - 2 And Other Accelerator Constraints. https://doi.org/10.1142/9789812791313_0017

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