By Nodoka Yamanaka
In this thesis the writer discusses the phenomenology of supersymmetric types through experimental facts set research of the electrical dipole second. there's an review of the common methods contributing to the electrical dipole moments inside R-parity-violating supersymmetry, which demand higher-order perturbative computations.
A new procedure according to linear programming is constructed and for the 1st time the non-trivial parameter area of R-parity violation respecting the limitations from current experimental facts of the electrical dipole second is printed. to boot, the notable potency of the recent procedure in scanning the parameter area of the R-parity-violating quarter is successfully tested. This new procedure makes it attainable to extract from the experimental info a extra trustworthy constraint at the R-parity violation.
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Extra info for Analysis of the Electric Dipole Moment in the R-parity Violating Supersymmetric Standard Model
The experimental results give tight bounds especially on the flavor off-diagonal component of the trilinear coupling [au , ad , ae of Eq. 4)]. The suppression is approximately δm q2˜ m q2˜ ∗ O(10−3 ) (processes involving the third generation do not give strong constraint). Flavor conserving processes can also yield restrictions. The third type of restriction comes from the mixing of fermion with their chiral partner (intra-generation mixing, L ↔ R). This constraint applies only to the flavor diagonal components of the trilinear interaction [terms with au , ad , ae in Eq.
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9) [13–16, 22]. This fact can disturb the current picture of the Universe in two ways, and we need to constrain RPV interactions in each case. The first topic is the stability of the supersymmetric dark matters. The candidates of dark matter in supersymmetric models are the lightest neutralino or sneutrino. To Fig. 8 Example of resonance process with RPV interactions in collider search Fig. 27) for m SUSY = O(100 GeV), where i, j, k = 1, 2, 3. Of course these limits do not apply when the dark matter is not composed of supersymmetric particles.
Analysis of the Electric Dipole Moment in the R-parity Violating Supersymmetric Standard Model by Nodoka Yamanaka