论文标题

R-对称翻转SU(5)

R-Symmetric Flipped SU(5)

论文作者

Hamaguchi, Koichi, Hor, Shihwen, Nagata, Natsumi

论文摘要

我们构建了具有$ r $对称性的超对称翻转SU(5)大统一模型。这种$ r $对称性禁止危险的不可鉴定的操作员被截止比例抑制,直至足够大的质量尺寸,以使SU(5)破裂的Higgs Field在沿$ f $ - f $ - 和$ d $ flat方向的统一订单的真空期望值产生了真空期望值,并有助于效应效果。 $ r $对称性也禁止希格斯田地的质量术语,而丢失的合作伙伴机制解决了双重划分的分裂问题。右撇子中微子的质量是由不可氮肥的算子产生的,然后产生了光中微子的质谱,并通过与中微子振荡数据一致的Seesaw机制混合。该模型预测,颜色 - 三个higgs的多数将位于中等程度上,并且发现其质量受质子衰减实验的约束,为$ \ gtrsim 5 \ times 10^{11} $ gev。如果是$ \ Lessim 10^{12} $ gev,那么在$ p \ to $ p \至π^0μ^+ $和$ p \ to k^0μ^+ $衰减模式的$ p \ to $ p \ to $ p \ to $ p \ to $ p \ to to $ p \ to prot-kamiokande进行的未来质子衰减实验,相反,与普通的统一模型相反,$ p \ $ p \ $ p \ $ p \ $ k^$ p \ $ p \ unime衰减模式。质子衰减分支的这种特征预测使我们能够将模型与其他情况区分开。

We construct a supersymmetric flipped SU(5) grand unified model that possesses an $R$ symmetry. This $R$ symmetry forbids dangerous non-renormalizable operators suppressed by a cut-off scale up to sufficiently large mass dimensions so that the SU(5)-breaking Higgs field develops a vacuum expectation value of the order of the unification scale along the $F$- and $D$-flat directions, with the help of the supersymmetry-breaking effect. The mass terms of the Higgs fields are also forbidden by the $R$ symmetry, with which the doublet-triplet splitting problem is solved with the missing partner mechanism. The masses of right-handed neutrinos are generated by non-renormalizable operators, which then yield a light neutrino mass spectrum and mixing through the seesaw mechanism that are consistent with neutrino oscillation data. This model predicts one of the color-triplet Higgs multiplets to lie at an intermediate scale, and its mass is found to be constrained by proton decay experiments to be $\gtrsim 5 \times 10^{11}$ GeV. If it is $\lesssim 10^{12}$ GeV, future proton decay experiments at Hyper-Kamiokande can test our model in the $p \to π^0 μ^+$ and $p \to K^0 μ^+$ decay modes, in contrast to ordinary grand unified models where $p \to π^0 e^+ $ or $p \to K^+ \barν$ is the dominant decay mode. This characteristic prediction for the proton decay branches enables us to distinguish our model from other scenarios.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源