论文标题

温伯格的3HDM潜力有自发的CP违规

Weinberg's 3HDM potential with spontaneous CP violation

论文作者

Plantey, R., Ogreid, O. M., Osland, P., Rebelo, M. N., Solberg, M. Aa.

论文摘要

我们研究了温伯格的$ \ mathbb {z} _2 \ times \ mathbb {z} _2 $ -Smmetric Tright-higgs-doublet模型(3HDM)的潜力。该潜力旨在在规格理论中适应标量域中的CP违规,同时允许自然风味保护。该框架允许明确和自发的CP违规。当将电势的系数视为复杂时,可以明确违反CP。由于选择为真实的系数,CP可以通过复杂的真空期望值(VEV)自发侵犯。在没有导致CP违规的可能性(无论是由复杂VEV)引起的术语的情况下,该电位具有两个全局U(1)对称性。在这种情况下,自发的对称破裂通常会引起无质量的状态。在现实的实施中,必须包括这些术语,从而阻止了戈德石玻色子的存在。对参数进行扫描,在125 GEV处施加中性态的存在,几乎是CP-eve,这表明,在没有微调的情况下,标量频谱包含一个低于125 GEV的一个或两个状态,其质量低于125 GEV,具有重要的CP-ODD组分。这些光状态将通过Bjorken工艺具有较低的生产率,因此可以在LEP处逃脱。在LHC,情况不太清楚。虽然我们在这里不打算对光状态进行全面的现象学研究,但我们指出,$γγ$衰减渠道的衡量渠道将具有挑战性,因为抑制了$ ww $。

We study the potential of Weinberg's $\mathbb{Z}_2\times\mathbb{Z}_2$-symmetric three-Higgs-doublet model (3HDM). The potential is designed to accommodate CP violation in the scalar sector within a gauge theory, while at the same time allowing for natural flavour conservation. This framework allows for both explicit and spontaneous CP violation. CP can be explicitly violated when the coefficients of the potential are taken to be complex. With coefficients chosen to be real, CP can be spontaneously violated via complex vacuum expectation values (vevs). In the absence of the terms leading to the possibility of CP violation, either explicit or induced by complex vevs, the potential has two global U(1) symmetries. In this case, spontaneous symmetry breaking would in general give rise to massless states. In a realistic implementation, those terms must be included, thus preventing the existence of Goldstone bosons. A scan over parameters, imposing the existence of a neutral state at 125 GeV that is nearly CP-even shows that, in the absence of fine-tuning, the scalar spectrum contains one or two states with masses below 125 GeV that have a significant CP-odd component. These light states would have a low production rate via the Bjorken process and could thus have escaped detection at LEP. At the LHC the situation is less clear. While we do not here aim for a full phenomenological study of the light states, we point out that the $γγ$ decay channel would be challenging to measure because of suppressed couplings to $WW$.

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