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Published on: September 5, 2019
Probing Seesaw with Parity Restoration.
Goran Senjanović1,2, Vladimir Tello1
1Gran Sasso Science Institute, Viale Crispi 7, L'Aquila 67100, Italy.
We introduce a new method to test the seesaw mechanism for neutrino mass using doubly charged scalars. This approach simplifies the experimental determination of neutrino Dirac Yukawa couplings within the minimal left-right symmetric model.
Area of Science:
- Particle Physics
- Cosmology
- High Energy Physics
Background:
- The seesaw mechanism is a leading explanation for the small masses of neutrinos.
- Minimal left-right symmetric models provide a theoretical framework incorporating this mechanism.
- Neutrino Dirac Yukawa couplings are crucial for understanding neutrino properties and decays.
Purpose of the Study:
- To propose a novel method for experimentally testing the seesaw origin of neutrino mass.
- To establish a connection between observable quantities and fundamental couplings in particle physics.
- To simplify the experimental determination of neutrino Dirac Yukawa couplings.
Main Methods:
- Investigating the leptonic interactions of doubly charged scalars.
- Analyzing the relationship between these interactions and neutrino Dirac Yukawa couplings.
- Proving that relevant physical quantities depend solely on the Hermitian part of the couplings.
Main Results:
- A direct link is established between doubly charged scalar interactions and neutrino Dirac Yukawa couplings.
- It is demonstrated that physical observables are functions of only the Hermitian part of these couplings.
- This finding offers a simplified pathway for experimental verification.
Conclusions:
- The proposed method provides a more straightforward approach to testing the seesaw mechanism.
- Experimental determination of neutrino Dirac Yukawa couplings can be significantly simplified.
- This work contributes to a deeper understanding of neutrino physics within extended gauge models.
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