TL;DR
This paper studies how intermediate-scale new physics affects the evolution of six-quark operators responsible for baryon number violation, providing tools to connect high-energy theories with experimental bounds on neutron-antineutron oscillations.
Contribution
It systematically analyzes RG running of $ riangle B=2$ operators with and without intermediate new physics, and offers a Python tool for such evolution.
Findings
RG running significantly impacts BNV operator constraints
Intermediate new physics can alter the scale bounds for BNV processes
Provided a flexible Python script for RG evolution with new physics scenarios
Abstract
The recent identification of possible 11 neutron-antineutron (-) oscillation candidate events at Super-Kamiokande has renewed the interest in transitions. In this work, we analyze the Renormalization Group (RG) running of mass dimension-9 six-quark operators, in scheme, that generate processes like , deuteron decay, - oscillations etc, evolving them from the electroweak scale to baryon number violating scale (). Our goal is to systematically account for the influence of potential new physics at intermediate energies (), especially given the fact that {\it Large Hadron Collider} has not ruled out new physics beyond . To comprehensively investigate their influence, we consider two scenarios: (i) a minimal setup with only Standard Model…
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