Weakly-Interacting Massive Particles in Non-supersymmetric SO(10) Grand Unified Models
Natsumi Nagata, Keith A. Olive, and Jiaming Zheng

TL;DR
This paper explores non-supersymmetric SO(10) grand unified theories to identify viable weakly interacting dark matter candidates that satisfy gauge unification, proton decay constraints, and can be tested experimentally.
Contribution
It systematically classifies potential dark matter candidates in SO(10) models considering gauge and proton decay constraints, identifying specific viable scalar and fermion candidates.
Findings
Scalar singlets with zero hypercharge are viable candidates.
Fermion triplets in the 45 representation can lead to long proton lifetime.
Models with weak doublets and hypercharge 1/2 are promising dark matter candidates.
Abstract
Non-supersymmetric SO(10) grand unified theories provide a framework in which the stability of dark matter is explained while gauge coupling unification is realized. In this work, we systematically study this possibility by classifying weakly interacting DM candidates in terms of their quantum numbers of , , and . We consider both scalar and fermion candidates. We show that the requirement of a sufficiently high unification scale to ensure a proton lifetime compatible with experimental constraints plays a strong role in selecting viable candidates. Among the scalar candidates originating from either a 16 or 144 of SO(10), only SU(2) singlets with zero hypercharge or doublets with satisfy all constraints for and $\text{SU}(3)_C \otimes \text{SU}(2)_L…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Dark Matter and Cosmic Phenomena · Quantum Chromodynamics and Particle Interactions
