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Testing scalar versus vector dark matter

机译:测试标量与矢量暗物质

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We investigate and compare two simple models of dark matter (DM): a vector and a scalar DM model. Both models require the presence of two physical Higgs bosons h 1 and h 2 which come from mixed components of the standard Higgs doublet H and a complex singlet S . In the vector model, the extra U ( 1 ) symmetry is spontaneously broken by the vacuum of the complex field S . This leads to a massive gauge boson X μ that is a DM candidate stabilized by the dark charge conjugation symmetry S → S * , X μ → ? X μ . On the other hand, in the scalar model the gauge group remains the standard one. The DM field A is the imaginary component of S and the stabilizing symmetry is also the dark charge conjugation S → S * ( A → ? A ). In this case, in order to avoid spontaneous breaking, the U ( 1 ) symmetry is broken explicitly, but softly, in the scalar potential. The possibility to disentangle the two models has been investigated. We have analyzed collider, cosmological, DM direct and indirect detection constraints and shown that there are regions in the space spanned by the mass of the nonstandard Higgs boson and the mass of the DM particle where the experimental bounds exclude one of the models. We have also considered possibility to disentangle the models at e + e ? collider and concluded that the process e + e ? → Z + DM provides a useful tool to distinguish the models.
机译:我们研究并比较了暗物质(DM)的两个简单模型:向量模型和标量DM模型。这两个模型都需要存在两个物理希格斯玻色子h 1和h 2,它们来自标准希格斯二重态H和复杂的单重态S的混合成分。在矢量模型中,多余的U(1)对称性被复数场S的真空自然破坏。这导致了质量规玻色子Xμ,它是通过暗电荷共轭对称S→S *,Xμ→? Xμ另一方面,在标量模型中,量规组仍然是标准组。 DM场A是S的虚部,稳定对称性也是暗电荷共轭S→S *(A→?A)。在这种情况下,为了避免自发破裂,U(1)对称性在标量势中被显式但柔和地破坏。已经研究了解开两个模型的可能性。我们分析了对撞机,宇宙学,DM的直接和间接检测约束条件,并显示出空间中存在由非标准希格斯玻色子质量和DM粒子质量跨越的区域,其中实验界限排除了其中一种模型。我们还考虑了在e + e解开模型的可能性?对撞机并得出结论,过程e + e? →Z + DM提供了一个有用的工具来区分模型。

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