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arXiv · hep-ph/0204187

Supersymmetry and Dark Matter

Abstract

We examine supergravity models with grand unification at M_G possessing R parity invariance. Current data has begun to significantly constrain the parameter space. Thus for mSUGRA, accelerator data places a lower bound on m_{1/2} of m_{1/2} >~300 GeV while astronomical data on the amount of relic dark matter narrowly determines m_0 in terms of m_{1/2} (for fixed value of tanbeta and A_0) due to co-annihilation effects. Additional new data could fix the parameters further. Thus the parameter space is sensitive to the muon magnetic moment anomaly, δa_μ, and if δa_μlies 1 σabove its current central value, it would exclude mSUGRA, while if it lies 1σbelow (but is still positive) it pushes the SUSY spectrum into the TeV domain. The B_s ->μ^+ μ^- decay is seen to be accessible to the Tevatron RunII with branching ratio sensitivity of Br[B_s ->μ^+ μ^-] > 6.5\times10^{-9} with 15 fb^{-1}/detector, and a value of 7(14)\times10^{-8} obtainable with 2 fb^{-1} would be sufficient to exclude mSUGRA for tan beta < 50(55). Measurements of B_s ->μ^+ μ^- can cover the full mSUGRA parameter space for tanbeta > 40 if δa_μ> 11\times10^{-10}, and combined measurements of B_s -> μ^+ μ^-, a_μand m_h (or alternately the gluino mass) would effectively determine the mSUGRA parameters for μ> 0. Detector cross sections are then within the range of planned future dark matter experiments. Non-universal models are also discussed, and it is seen that detector cross sections there can be much larger, and can be in the DAMA data region.

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BibTeXRIS

R. Arnowitt, B. Dutta. 2002-04-16. Supersymmetry and Dark Matter. https://arxiv.org/abs/hep-ph/0204187

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